| Literature DB >> 31882584 |
Pawel Blasiak1,2, Marcin Markiewicz3.
Abstract
All identical particles are inherently correlated from the outset, regardless of how far apart their creation took place. In this paper, this fact is used for extraction of entanglement from independent particles unaffected by any interactions. Specifically, we are concerned with operational schemes for generation of all tripartite entangled states, essentially the GHZ state and the W state, which prevent the particles from touching one another over the entire evolution. The protocols discussed in the paper require only three particles in linear optical setups with equal efficiency for boson, fermion or anyon statistics. Within this framework indistinguishability of particles presents itself as a useful resource of entanglement accessible for practical applications.Entities:
Year: 2019 PMID: 31882584 PMCID: PMC6934615 DOI: 10.1038/s41598-019-55137-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Interaction without touching scenario. Read from left to right, K independent particles created in distant regions of space called subsystems A1, ..., A are transformed by local unitaries U in the respective regions A producing a product state of K qudits (encoded as a superposition of paths grouped in A for k = 1, ..., K)[15]. Then the paths are redirected to other space locations, following some permutation , where the paths form K groups of separated subsystems B1, ..., B. The latter are further manipulated by local unitaries V within the respective regions B. In the last step, the focus is on some chosen pairs of paths ⊂ B picked out from each subsystem B with the promise of post-selection which retains only the events with a single particle in each , ..., . This guarantees that such prepared (dual-rail) qubits are well-defined. It is crucial to observe that post-selection and the specific geometry of the setups prevents the particles from touching one another over the entire evolution.
Figure 2Two notable examples. Generation of the Bell state and the GHZ state in the no-touching scenario. Two (three) independent particles are processed without touching leading to the Bell (GHZ) state encoded in subsystems B1 = , B2 = (and B3 = ) in the output; see Eqs. (3) and (4). In both cases, local unitaries H in the input are the Hadamard transforms and the permutations and are respectively for the Bell state and for the GHZ state.
Figure 3Generation of the W state without touching. Three independent particles injected into separated subsystems A1, A2 and A3 produce the W state encoded in subsystems , and (dual-rail qubits). The protocol follows the interaction without touching scenario with post-selection in , and , where H are the usual Hadamard transforms Eq. (5) and U is the unitary specified in Eq. (6). See details in the text.